Wildes David, Anderson L Meadow, Sabogal Alex, Marqusee Susan
Department of Molecular and Cell Biology, University of California, Berkeley 94720-3206, USA.
Protein Sci. 2006 Jul;15(7):1769-79. doi: 10.1110/ps.062136006. Epub 2006 Jun 2.
We have defined the free-energy profile of the Src SH2 domain using a variety of biophysical techniques. Equilibrium and kinetic experiments monitored by tryptophan fluorescence show that Src SH2 is quite stable and folds rapidly by a two-state mechanism, without populating any intermediates. Native state hydrogen-deuterium exchange confirms this two-state behavior; we detect no cooperative partially unfolded forms in equilibrium with the native conformation under any conditions. Interestingly, the apparent stability of the protein from hydrogen exchange is 2 kcal/mol greater than the stability determined by both equilibrium and kinetic studies followed by fluorescence. Native-state proteolysis demonstrates that this "super protection" does not result from a deviation from the linear extrapolation model used to fit the fluorescence data. Instead, it likely arises from a notable compaction in the unfolded state under native conditions, resulting in an ensemble of conformations with substantial solvent exposure of side chains and flexible regions sensitive to proteolysis, but backbone amides that exchange with solvent approximately 30-fold slower than would be expected for a random coil. The apparently simple behavior of Src SH2 in traditional unfolding studies masks the significant complexity present in the denatured-state ensemble.
我们运用多种生物物理技术确定了Src SH2结构域的自由能分布。通过色氨酸荧光监测的平衡和动力学实验表明,Src SH2相当稳定,通过双态机制快速折叠,不会形成任何中间体。天然态氢氘交换证实了这种双态行为;在任何条件下,我们都未检测到与天然构象处于平衡状态的协同部分未折叠形式。有趣的是,通过氢交换得到的蛋白质表观稳定性比通过荧光进行的平衡和动力学研究所确定的稳定性高2千卡/摩尔。天然态蛋白酶解表明,这种“超保护”并非源于用于拟合荧光数据的线性外推模型的偏差。相反,它可能源于天然条件下未折叠状态的显著压缩,导致构象集合中侧链和对蛋白酶解敏感的柔性区域有大量溶剂暴露,但主链酰胺与溶剂交换的速度比随机卷曲预期的慢约30倍。在传统的去折叠研究中,Src SH2表面上简单的行为掩盖了变性态集合中存在的显著复杂性。